| (84) |
Designated Contracting States: |
|
DE FR GB |
| (30) |
Priority: |
16.06.1994 US 261278
|
| (43) |
Date of publication of application: |
|
20.12.1995 Bulletin 1995/51 |
| (73) |
Proprietors: |
|
- FORD MOTOR COMPANY LIMITED
Brentwood,
Essex CM13 3BW (GB) Designated Contracting States: GB
- FORD-WERKE AKTIENGESELLSCHAFT
50735 Köln (DE) Designated Contracting States: DE
- FORD FRANCE S. A.
92506 Rueil-Malmaison Cédex (FR) Designated Contracting States: FR
|
|
| (72) |
Inventors: |
|
- Tamor, Michael Alan
Toledo,
Ohio 43617 (US)
- Vassell, William Chris
Bloomfield,
Michigan 48301 (US)
|
| (74) |
Representative: Messulam, Alec Moses |
|
A. Messulam & Co.
24 Broadway Leigh-on-Sea
Essex SS9 1BN Leigh-on-Sea
Essex SS9 1BN (GB) |
| (56) |
References cited: :
EP-A- 0 450 125
|
US-A- 4 656 052
|
|
| |
|
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- PROCEEDINGS OF THE 29TH NATIONAL SYMPOSIUM OF THE AMERICAN VACUUM SOCIETY, BALTIMORE,
MD, USA, 16-19 NOV. 1982, vol. 1, no. 2, pt.1, ISSN 0734-2101, JOURNAL OF VACUUM SCIENCE
& TECHNOLOGY A (VACUUM, SURFACES, AND FILMS), APRIL-JUNE 1983, USA, pages 323-325,
SHANFIELD S ET AL 'Ion beam synthesis of cubic boron nitride'
- THIN SOLID FILMS, 25 NOV. 1993, SWITZERLAND, vol. 235, no. 1-2, ISSN 0040-6090, pages
30-34, PAISLEY M J ET AL 'Boron nitride thin films by microwave ECR plasma chemical
vapor deposition'
- JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A (VACUUM, SURFACES, AND FILMS), NOV.-DEC.
1985, USA, vol. 3, no. 6, ISSN 0734-2101, pages 2141-2146, HALVERSON W ET AL 'Effects
of charge neutralization on ion-beam-deposited boron nitride films'
- JAPANESE JOURNAL OF APPLIED PHYSICS, PART 1 (REGULAR PAPERS & SHORT NOTES), 1990,
JAPAN, vol. 29, no. 5, ISSN 0021-4922, pages 930-933, OKAMOTO M ET AL 'Formation of
cubic boron nitride film on Si with boron buffer layers'
- THIN SOLID FILMS, 1 JAN. 1994, SWITZERLAND, vol. 237, no. 1-2, ISSN 0040-6090, pages
32-37, SMIRNOVA T P ET AL 'Boron nitride films prepared by remote plasma-enhanced
chemical vapour deposition from borazine (B/sub 3/N/sub 3/H/sub 6/)'
- THIN SOLID FILMS, 15 MARCH 1992, SWITZERLAND, vol. 209, no. 1, ISSN 0040-6090, pages
59-66, VERINAUD F ET AL 'Investigations of hard BN films obtained by ion plating'
- NINTH INTERNATIONAL CONFERENCE ON METALLURGICAL COATINGS AND PROCESS TECHNOLOGY, SAN
DIEGO, CA, USA, 5-8 APRIL 1982, vol. 96, no. 1, ISSN 0040-6090, THIN SOLID FILMS,
1 OCT. 1982, SWITZERLAND, pages 31-44, WEISSMANTEL C ET AL 'Preparation and properties
of hard i-C and i-BN coatings'
- JOURNAL OF APPLIED PHYSICS, 15 SEPT. 1990, USA, vol. 68, no. 6, ISSN 0021-8979, pages
2780-2789, BURAT O ET AL 'Characterization and growth mechanisms of boron nitride
films synthesized by ion-beam-assisted deposition'
- PROCEEDINGS OF THE 27TH NATIONAL SYMPOSIUM OF THE AMERICAN VACUUM SOCIETY, DETROIT,
MI, USA, 13-17 OCT. 1980, vol. 18, no. 2, ISSN 0022-5355, JOURNAL OF VACUUM SCIENCE
AND TECHNOLOGY, MARCH 1981, USA, pages 179-185, WEISSMANTEL C 'Ion beam deposition
of special film structures'
|
|
| |
|
[0001] This invention is directed to a process for providing a film comprising hydrogenated
boron nitride (a-BN:H) on a substrate and the film so provided. More particularly,
the process comprises depositing the a-BN:H film by condensation from a flux of ions
generated from gaseous precursors including borazine, B
3N
3H
6, by plasma-enhanced chemical vapour deposition, under mild conditions including low
power density.
[0002] In the automotive industry, there has been a trend to manufacture more vehicle components
from plastic. Plastics are corrosion resistant and lighter in weight than the metal
components they replace, contributing to improved fuel economy. Glass components such
as side- and backlights, might eventually be replaced by lighter, sound-absorbing
plastics for reduced cost, improved fuel economy and reduced cabin noise. While numerous
plastic materials are available to manufacture such components, some are less than
desirable for such use since they lack the wear resistance desired for such components.
It would be advantageous if the selection of plastic materials could be broadened.
[0003] One potential solution involves providing a protective film on such components which
makes them more impervious to wear, including abrasion, and also chemical attack.
To be readily commercialised, the films should be able to be deposited on the substrates
at high rates, at the low temperatures required in working with plastics, from commercially
available chemicals and by using conventional production equipment.
[0004] One of the primary objectives in research directed to diamond and other related wear
resistant thin-film coatings is the development of completely transparent coatings
which may be deposited at low temperatures. While thin polycrystalline diamond films
are transparent and should provide the ultimate in protection from wear and corrosion,
they can be deposited only at temperatures too high for most substrates of interest
and generally require exacting post-deposition polishing to obtain good optical quality.
Ion-beam or plasma-deposited amorphous hydrogenated carbon (also known as a-C:H or
diamond like carbon) is sufficiently wear resistant and may be deposited at low temperature,
but is optically too absorbent (deep red-brown) when deposited to useful thickness,
i.e., to more than roughly 0.2 µm. This colouration is due to the inclusion of graphitically
bonded carbon in the otherwise transparent amorphous carbon-hydrogen network.
[0005] Cubic boron-nitride (c-BN) is visibly transparent and is nearly as hard as diamond.
However, as yet thin polycrystalline c-BN films have not been synthesised at a low
temperature compatible with most substrates of interest. Reinke et al. in "
A Sputter Model for Ion Induced Cubic Boron Nitride Growth", "Diamond Materials", p. 283-289, J. P. Dismukes and K. V. Ravi eds., (The Electrochemical
Society, Pennington, NJ, 1993) describe that methods for synthesis of c-BN are generally
characterised by (1) high substrate temperature (> 200°C, usually over 400°C), (2)
intense activation of the precursor vapour (by not filament, radio frequency or microwave
activation), and (3) use of separate boron- and nitrogen-containing precursors (boron-halides
and ammonia, respectively). Although a pure, macrocrystalline c-BN phase has not yet
been reliably demonstrated, the more successful methods involve electron-beam evaporation
of boron metal or laser-ablation of h-BN into an intense nitrogen plasma. Such methods
are unsuited to deposition over large areas at low temperatures.
[0006] S.Shanfield & R. Wolfson (J. Vac. Sci. Technol., A(2), April-June 1983, 323-325)
have reported the ion-beam synthesis of cubic boron nitride using an ion beam extracted
from a borazine (B
3N
3H
6) plasma at room temperature.
[0007] Amorphous boron-nitride (a-BN) films have also been synthesised by sputtering techniques.
Such previously prepared films are transparent or translucent, but are not particularly
hard or wear-resistant, some even being subject to attack by atmospheric moisture.
Sputtering is a form of physical vapour deposition in which atoms from a target material
are dislodged by impact of a noble gas ion and directly transferred to the surface
to be coated without intermediate interaction with the vapour. It is believed that
these prior a-BN films possess these undesirable wear-resistant characteristics because
the processes of their formation encourage a high degree of sp
2 bonding in the film as in the hexagonal phase of boron-nitride (h-BN, analogous to
graphite is quite soft). Such a-BN films are estimated to be at least 90% hexagonal.
[0008] Several investigators have attempted to form harder a-BN or a-BN:H coatings by means
of chemical vapour deposition. These attempts have not met with success, we believe,
because they do not include the deposition process conditions necessary to deposit
films as disclosed in the present process, the resultant film comprising essentially
stoichiometric boron nitride or nearly stoichiometric boron nitride. Our invention
films comprise, we believe, a sufficient sp
3 fraction, estimated to be at least 20%, preferably at least 30%, still more preferably
at least 40%, so as to impart useful wear resistant properties. Stoichiometry or near-stoichiometry
(slightly boron rich) of the boron nitride films is required for transparency of the
films and sp
3 bonding is required for hardness. For example, Kouvetakis and coworkers [J. Kouvetakis,
V. V. Patel, C. W. Miller and D. B. Breach, J. Vac. Sci. Technol. A, v. 8, p. 3929
(1990)] evaluated several schemes for deposition of a-BN from borazine (B
3N
3H
6). Films deposited at 550°C were thought to be highly non-stoichiometric, i.e, very
boron rich, and were found to be entirely sp
2-bonded. Films deposited by a remote-plasma technique (where the object to be coated
is not immersed in the plasma) were found to be stoichiometric with respect to B and
N but were polycrystalline h-BN. Films deposited on the cathode of a parallel-plate
plasma-reactor at 300°C were also found to be stoichiometric but also largely h-BN,
i.e, being sp
2 bonded. The deficiencies of films having these compositions were discussed above.
Such films, deposited at lower temperatures, were non-adherent and unstable against
attack by atmospheric moisture.
[0009] The present invention overcomes the deficiencies of the prior methods and provides
a hard, transparent film comprising a-BN:H on various substrate materials including
plastics. Desirably the present invention process used commercially available materials
and conventional production equipment in depositing the film.
[0010] The invention provides a process for providing a hard, transparent, film comprising
amorphous hydrogenated boron nitride on a substrate.
[0011] According to the invention, in a process for producing a film comprising amorphous
hydrogenated boron nitride (a-BN:H) on a substrate by plasma-enhanced chemical vapour
deposition from gaseous precursor materials containing borazine, said a-BN:H is deposited
as a hard, transparent film on said substrate at a temperature of less than about
200°C from a flux of ions generated by plasma-enhanced chemical vapour deposition
from gaseous precursor materials comprising ammonia and borazine in a molar ratio
between about 1:1 and 5:1 in a radio-frequency plasma system maintained at a pressure
less than 133 Pa (1 Torr), said substrate being maintained at a potential of between
-150 and -900 volts relative to the plasma generated by the system and the kinetic
energy of said ions being between 50 and 300 electron volts (eV) per ion.
[0012] The process may be carried out even at low temperatures below 100°C as is desirable
for many plastic substrates.
[0013] According to another embodiment of the invention, it comprises the amorphous hydrogenated
boron nitride film made according to the above disclosed process.
[0014] The invention will now be described further, by way of example, with reference to
the accompanying drawings, in which:
Fig. 1 is a schematic representation of an embodiment RF plasma deposition system
useful in the invention process; and
Figs. 2(a), 2(b) and 2(c) show EDS spectra of various boron nitride films, the film
of Fig 2(b) being an embodiment of the present invention.
[0015] The process of this invention involves providing an amorphous film comprising hydrogenated
boron nitride (a-BN:H) on a substrate. The film is slightly boron rich or essentially
stoichiometric with respect to the B:N atomic ratio, the most desired value being
about 1:1. While a-BN:H made according to this invention process may have a N:B atomic
ratio of at least about 0.7:1, preferably this ratio is at least about 0.8:1, more
preferably being at least about 0.9:1. Generally, these films are about 35at% H. A
more precise, but much more awkward, designation might be a-(BN)
(1-X)H
x where x is preferably about 0.1 to 0.4. Such films are hard, transparent, and hydrophobic.
They may be used to endow substrates including plastics like polycarbonate with improved
abrasion and chemical resistance, which resistance has surprisingly been found to
be equivalent or superior to that of glass. This invention is not, however, limited
to applying the invention film to plastics. Other substrate materials might also benefit
from an adherent film of a-BN:H made according to this invention. Exemplary of such
substrates are glass, coatings on glass which may be well protected by an overlayer
of the present invention a-BN:H, and any metal such as steel, aluminium, brass, and
copper, to name but a few. Protective transparent a-BH:H films made according to the
present invention have been deposited on substrates including glass and plastics and
have proven impervious to deliberate abrasion by steel wool or emery paper (silicon-carbide
grit). These present invention films are also highly hydrophobic such that water drops
slide off leaving a dry surface.
[0016] According to the invention process, the deposition of the film is carried out by
condensation from a flux of ions generated from gaseous precursors comprising borazine
and ammonia, the kinetic energy of the ions being between 50 and 300 electron volts
(eV) per ion. Useful plasma ion sources are RF-induction plasma with beam grids for
ion acceleration or with no grids and an RF potential to the substrate to provide
acceleration. The latter embodiment essentially uses a secondary ion source to increase
the ion flux in the original simple parallel-plate RF embodiment. Preferably, the
deposition is carried out using plasma-enhanced chemical vapour deposition techniques
as is described in the following paragraphs.
[0017] In the preferred process embodiment, deposition is carried out in a RF plasma deposition
system. Plasma-enhanced chemical vapour deposition is a technique well known to those
skilled in the art. A representative description of this technique as may be employed
according to the present invention is discussed in "Films Deposition by Plasma Techniques,"
by M. Konuma (Springer-Verlag, Berlin, 1993). As would be appreciated to those skilled
in the art, the substrate on which the film is deposited in this preferred deposition
embodiment is the RF-driven cathode of the reactor of the plasma deposition system.
This deposition is carried out in a radio frequency (RF) plasma system maintained
during deposition at a pressure less than 133 Pa (1 Torr), preferably less than about
13.3 Pa (0.1 Torr), most preferably between about 1.3 Pa (10 mTorr) and 7·8 Pa (60
mTorr). Under increased total gas pressure, the film growth rates are increased.
[0018] Exemplary of a RF plasma deposition system which may be employed in the process of
the invention is that shown schematically in Fig. 1. The reactor embodied therein
is described as an RF-driven, capacitively-coupled, parallel plate reactor. The electrode
to which RF-power is delivered develops a negative potential relative to the plasma
and becomes the cathode. The preferred process described here is carried out with
RF power delivered only to the electrode to which the substrate is mounted. Therefore
the other electrode, the anode, is connected to ground potential. The metal chamber
also can be used as the grounded anode. For conducting substrates even the cathode
plate may be omitted and the RF-power delivered directly to the substrate, effectively
making it the cathode itself. During the deposition process, the substrate has a RF
induced bias of between about -150 and -900 volts, more preferably between about -200
and -600 volts. This RF system, or others used according to the invention, is preferably
maintained during film deposition at a power density (ion impact energies on the substrate)
between about 0.5 w/cm
2 and 3 w/cm
2. The power density on the substrate during deposition according to the present invention
is optimally generally less than about 2 watts/cm
2. The RF power in the preferred embodiment process is generally varied to induce substrate
bias voltages (relative to the plasma, so determining the ion impact energy). The
ion impact energy is generally roughly 1/3 the RF bias voltage. The actual mean ion
impact energy on the growing film depends both on the bias voltage and the pressure
and composition of the feed-gas. For typical growth conditions under pressures less
than roughly 6·5 Pa (50 milliTorr), ions undergo few collisions in traversing the
potential drop between the plasma and the substrate, and the mean energy is typically
one-half to one-third the bias voltage. Thus the optimal ion impact energy (kinetic
energy of the ions) is in the range 50 to 300 eV per ion. At higher pressures collision
become more frequent and the impact energy is somewhat reduced. As the bias voltage
is related to the ionisation fraction of the plasma, increased bias voltage correlates
with increased ion density, ion flux, and therefore deposition rate. Increasing the
bias voltage on the substrate during deposition increased the film growth rate. In
this preferred invention embodiment process, as discussed above, the potential is
induced by radio-frequency-induced self-bias of the cathode on which the substrate
is mounted. Alternatively, if the substrate to be provided with the film is itself
an electrical conductor, it may be used as the cathode by applying the RF power directly
to it.
[0019] Prior to providing a film of a-BN:H on the substrate according to the invention process,
the substrate surfaces are often prepared by any number of methods such as grinding,
polishing, chemical etching, and ultrasonic degreasing. In all cases where this is
done, the method or combination of methods used is determined by the substrate material.
After surface preparation, the substrate may placed into a system reaction chamber
which is then evacuated, to a pressure, e.g., of about 6·5 x 10
-4 Pa (5x10
-6 Torr). This initial evacuation pressure is not critical since films can be deposited
over a wide range of initial pressures.
[0020] According to an optional next step, adsorbed contaminates are preferably removed
from the substrate surfaces by bombardment with ions, e.g., argon ions. These may
be formed by introducing argon gas into a reaction chamber and initiating a plasma
discharge. For this decontamination procedure, the substrate is generally biased at
about -100 to -500 volts. This optional step can be carried out from generally a few
minutes to about 20-30 minutes depending on the degree of surface contamination assumed.
[0021] In order to carry out the invention process, gaseous precursor(s) are employed to
form the film. The precursors consist essentially of borazine and ammonia, the molar
ratio of ammonia to borazine being at least 1:1, but not exceeding 5:1. Hydrocarbons
like methane, diethylsilane, or mixtures thereof may also be included with the borazine
and the ammonia in the present method. The addition of carbon-containing species such
as methane allows formation of films with arbitrary composition intermediate between
a-BN:H and a-C:H. The inevitable inclusion of sp
2-bonded carbon results in reduced transparency, however, and hence preferably, the
use of such carbon-containing species is limited to small amounts or excluded.
[0022] Flow rates of the gaseous precursors, as may be employed into the preferred RF system
embodiment described above, may be varied over a wide range while practising the present
invention. Typical flow rates are in the range of 1 to 30 standard cm
3/minute (sccm) or more. The chosen flow rate is dictated by the area of the object
to be coated and the deposition rate generated by the chosen ion flux generating (plasma)
conditions. Larger reactors and higher deposition rates require higher flow rates.
[0023] Under the mild deposition conditions employed in this invention process, it is believed
that the chemical bonding configuration of the precursor gases tend to be preserved
in the film grown from them. That is, the low pressures and low power densities of
our process, with the RF plasma system, generate such mild conditions that very little
chemical reaction of the precursors occurs in the vapour and with the preferred RF
process the plasma serves essentially as an ion-source. Since boron and nitrogen are
"pre-bonded" in the proper stoichiometry, the mild conditions of the invention process
maintain this stoichiometry in the deposited film. The films produced according to
the invention were found to contain a sufficiently high degree of sp
3 (fourfold) atomic coordination in combination with a sufficiently low content of
hydrogen, so as to be very hard and wear resistant, unlike most amorphous BN films
which are largely sp
2 (threefold) coordinated, as in hexagonal boron-nitride (h-BN), and are much softer.
Maximal hardness appears to be related to maximisation of unhydrogenated sp
3 bonding. The films of this invention often have hardness of at least 8 GPa, more
preferably between about 9 and 30 GPa.
[0024] Determination of the bonding was carried out by X-ray Photoelectron Spectroscopy
(XPS). XPS confirmed that (1) both the boron and the nitrogen are largely sp
3 coordinated, and (2) the boron is mainly bonded to nitrogen and vice-versa. The configurations
(the identity of atoms adjacent to a given atom) are similar to those of cubic boron-nitride
(sp
3 bonded boron surrounded by sp
3 nitrogen and vice-versa). This should not be confused with crystalline ordering where
both the identity and position of neighbouring atoms are periodic and predictable
to a considerable distance. This last is by definition impossible in an amorphous
material. The XPS features are broad compared with those exhibited by the crystalline
reference materials, indicating an amorphous structure and within the precision of
XPS, roughly 10%, these films are stoichiometric or nearly stoichiometric (slightly
boron rich).
[0025] It has been found that in order to suppress thermal annealing which leads to formation
of undesirable h-BN atomic configurations, during deposition according to the present
invention process the substrate temperature must be kept lower than about 200°C. The
ability to deposit films at relatively low substrate temperatures (less than 200°C)
as embodied in the present invention process is conveniently compatible with the requirement
that plastics not be heated over roughly 100°C. Where the thermal conductivity of
the substrate is poor or active cooling by internal flow of water or gas is impossible,
the energy flux delivered from the plasma must be limited to prevent overheating.
This may require that the growth rate be reduced. Thus it may be found that metals
may be coated at a higher rate than plastics. The particular temperature of the system
during the deposition process is not critical, as long as it is kept below about 200°C.
For deposition on most conventional plastics, it will generally be less than 100°C.
One advantage of the invention process is that it can be carried out at low temperatures
as would be necessary when the substrate is plastic. As would be apparent to those
skilled in the art in view of this disclosure, the substrate and other considerations
including the particular system employed will suggest allowable and optimal operating
temperatures. The physical properties, e.g., hardness, of the a-BN:H films made according
to the present invention may desirably be varied by changing the composition and/or
ratios of the precursor gases, and e.g., by varying the substrate bias voltage in
the RF embodiment process. For example, addition of ammonia to borazine in the molar
ratio of 1:1 increases the optical gap (E
g) from 2.5 eV to 3.5 ev as shown in the following table of films made according to
the present invention process. The films in the table were produced using preferred
RF plasma enhanced CVD. A combination of borazine and methane as precursors reproduces
films with an E
g of 1.4 eV. Optical gap is related to the transparency of the film. Transparency of
the films can be varied over a wide range without compromising hardness of the resultant
film as has been confirmed by nano-indentation measurements and as is shown in the
table.
Table
| FILM COMPOSITION |
THICKNESS |
HARDNESS |
OPTICAL GAP |
DENSITY |
| 100% Borazine |
4.13 µm |
9 GPa |
2.5 eV |
2.03 g/cm3 |
| |
| 1 Borazine |
4.6 µm |
10.8 GPa |
3.5 eV |
2.14 g/cm3 |
| 1 NH3 (ammonia) |
|
|
|
|
| |
| 1 Borazine |
|
|
|
|
| 1 NH3 |
3.7 µm |
10.5 GPa |
2.7 eV |
1.77 c/cm3 |
| 1 CH4 (methane) |
|
|
|
|
| |
| 1 Borazine |
|
|
|
|
| 1 NH3 |
6.6 µm |
13.1 GPa |
1.9 eV |
2.14 g/cm3 |
| 1 Si(C2H6)2 (diethylsilane) |
|
|
|
|
| |
| 1 Borazine |
3.5 µm |
11.1 GPa |
1.4 eV |
1.69 g/cm3 |
| 1 CH4 |
|
|
|
|
[0026] In the second example of the above table employing a molar ratio of borazine to ammonia
of 1:1, the flow rate of each of the gases was 10 sccm and the total system pressure
was 6·5 Pa (50 mT). As seen from the table, it resulted in a clear transparent film
with a hardness of 10.8 GPa (10.8x10
9 pascals). This compares favourably with amorphous hydrogenated carbon coatings (11.8
GPa). In this case, with a substrate bias of -900 volts, the deposition rate was generally
about 4µm/hr (micrometers/hour). The resulting films in the table were shown to be
essentially stoichiometric BN as determined by XPS (X-ray Photoelectron Spectroscopy).
Although it is not truly quantitative because of matrix effects (variations in the
fluorescence intensity of a given atom depending on its environment), Energy Dispersive
X-Ray Analysis (EDS) can be used to illustrate the effect of ammonia addition. Fig.
2a shows the EDS spectra of a film deposited from pure borazine while 2b is from 1:1
molar borazine/ammonia mixture according to the present invention. Fig. 2c, for comparison,
is an EDS spectra of a commercial h-BN specimen. The B:N ratio of the a-BN:H films
can be estimated by comparison of the ratio of the areas of the respective x-ray fluorescence
peaks of boron (B) and nitrogen (N) to that of the h-BN comparative standard. Without
ammonia being included with borazine as precursors during film formation, the resultant
a-BN:H film is slightly deficient in nitrogen yielding an estimated N/B atomic ratio
of 0.72. However, use of ammonia in addition to borazine as precursors (1:1 molar
ratio) increases the N/B ratio of the vapour slightly from 1:1 to 1.33:1, increases
the estimated N/B ratio of the film to 0.88, which optimally makes it much harder
and more transparent (as shown in the Table). Further increasing the ammonia:borazine
precursor molar ratio to 2:1 and 3:1 results in further improvement in transparency.
This improvement is noticeable only in thick films and then only in side-by-side comparison
to an uncoated substrate. Increase in the ammonia:borazine molar ratio to 3:1 increases
hardness only slightly. However, further increasing this ratio of precursors to 5:1
results in a much softer film, indicating the most optimal molar range of ammonia:borazine
precursors to be from 1:1 to roughly 4:1. It is believed that use of an excessively
high ammonia:borazine ratio, i.e., significantly above 5:1, results in the undesirable
incorporation of dangling NH
2 groups in the resultant film. While incorporation of these dangling groups does increase
the relative N fraction and give the appearance of improved stoichiometry, they cannot
contribute to the rigidity of the amorphous network of which the film is composed
and so actually degrade its hardness. These results clearly demonstrate that the use
of supplemental nitrogen precursor in the form of ammonia increases the nitrogen content
of the film and is useful to maintain B:N stoichiometry closer to essentially stoichiometric,
which is most desirable for optimal physical properties such as ultimate hardness
and transparency. The refractive index of a-BN:H made according to the present invention
process is suitable to avoid objectionable reflections when the film is applied on
glass and plastic substrates.
1. A process for producing a film comprising amorphous hydrogenated boron nitride (a-BN:H)
on a substrate by plasma-enhanced chemical vapour deposition from gaseous precursor
materials containing borazine, wherein a-BN:H is deposited as a hard, transparent
film on said substrate at a temperature of less than about 200°C from a flux of ions
generated by plasma-enhanced chemical vapour deposition from gaseous precursor materials
comprising ammonia and borazine in a molar ratio between about 1:1 and 5:1 in a radio-frequency
plasma system maintained at a pressure less than 133 Pa (1 Torr), said substrate being
maintained at a potential of between -150 and -900 volts relative to the plasma generated
by the system and the kinetic energy of said ions being between 50 and 300 electron
volts (eV) per ion.
2. A process according to claim 1, wherein the process is carried out at a temperature
of less than about 100°C.
3. A process according to claim 1 or claim 2, wherein the molar ratio of ammonia to borazine
is from 1:1 to 4:1.
4. A process according to any preceding claim, wherein the N:B atomic ratio in said a-BN:H
is at least about 0.7:1.
5. A process according to claim 4, wherein the N:B atomic ratio in said a-BN:H is about
1:1.
6. A process according to any preceding claim, wherein said substrate comprises materials
selected from the group consisting of glass, plastic, and metal.
7. A process according to any preceding claim, wherein said film has an optical gap of
at least about 2.5 eV.
8. A process according to any preceding claim, wherein the ions generated have impact
energies on said substrate of less than about 3 watts/cm2.
9. A process according to any preceding claim, wherein during deposition the system is
maintained at a power density between 0.5 w/cm2 and 3 w/cm2.
10. A film of hard, transparent amorphous hydrogenated boron-nitride (a-BN:H) comprising
N:B in a ratio of at least about 0.7:1 and comprising at least about 20% sp3 bonding between the boron and nitrogen in the film.
11. A film according to claim 10, wherein the B:N ratio is essentially stoichiometric.
1. Ein Verfahren, um einen Film, der amorphes hydriertes Bornitrid (a-BN:H) umfaßt, auf
einem Substrat durch plasmagestütztes chemisches Aufdampfen ausgehend von borazinhaltigen
gasförmigen Vorläuferstoffen herzustellen, worin das a-BN:H als harter, transparenter
Film auf diesem Substrat bei einer Temperatur von weniger als etwa 200°C aus einem
Ionenfluß abgeschieden wird, der durch plasmagestütztes chemisches Aufdampfen aus
gasförmigen Vorläuferstoffen, die Ammoniak und Borazin in einem Molverhältnis zwischen
etwa 1:1 und 5:1 umfassen, in einem RF/HF- Plasmasystem erzeugt wird, das bei einem
Druck von weniger als 133 Pa (1 Torr) gehalten wird, wobei dieses Substrat bei einem
Potential zwischen -150 und -900 V bezüglich des vom System erzeugten Plasmas gehalten
wird und die kinetische Energie dieser lonen zwischen 50 und 300 Elektronvolt (eV)
pro lon liegt.
2. Ein Verfahren nach Anspruch 1, worin das Verfahren bei einer Temperatur von weniger
als etwa 100°C durchgeführt wird.
3. Ein Verfahren nach Anspruch 1 oder Anspruch 2, worin das Molverhältnis zwischen Ammoniak
und Borazin zwischen 1:1 und 4:1 liegt.
4. Ein Verfahren nach irgendeinem der vorhergehenden Ansprüche, worin das Atomverhältnis
N:B in diesem a-BN:H mindestens etwa 0.7:1 beträgt.
5. Ein Verfahren nach Anspruch 4, worin das Atomverhältnis N:B in diesem a-BN:H etwa
1:1 beträgt.
6. Ein Verfahren nach irgendeinem der vorhergehenden Ansprüche, worin dieses Substrat
Materialien umfaßt, die aus der Reihe ausgewählt werden, die aus Glas, Kunststoffen
und Metall besteht.
7. Ein Verfahren nach irgendeinem der vorhergehenden Ansprüche, worin dieser Film einen
optischen Spalt von mindestens etwa 2.5 eV aufweist.
8. Ein Verfahren nach irgendeinem der vorhergehenden Ansprüche, worin die erzeugten lonen
beim Aufprall auf dieses Substrat Energien von weniger als etwa 3 Watt/cm2 besitzen.
9. Ein Verfahren nach irgendeinem der vorhergehenden Ansprüche, worin die Leistungsdichte
des Systems während der Abscheidung zwischen 0.5 Watt/cm2 und 3 Watt/cm2 gehalten wird.
10. Ein Film aus hartem, transparentem, amorphem hydriertem Bornitrid (a-BN:H), der N:B
in einem Verhältnis von mindestens etwa 0.7:1 und mindestens etwa 20% sp3-Bindung zwischen dem Bor und dem Stickstoff im Film umfaßt.
11. Ein Film nach Anspruch 10, worin das Verhältnis B:N im wesentlichen ein stöchiometrisches
ist.
1. Procédé de production d'un film comprenant du nitrure de bore hydrogéné amorphe (a-BN:H)
sur un substrat par dépôt chimique en phase vapeur activé au plasma à partir de substances
précurseurs gazeuses contenant de la borazine, dans lequel a-BN:H est déposé sous
forme d'un film dur, transparent sur ledit substrat à une température inférieure à
200°C environ grâce à un flux d'ions généré par dépôt chimique en phase vapeur activé
au plasma à partir de substances précurseurs gazeuses comprenant de l'ammoniac et
de la borazine suivant un rapport molaire compris entre 1:1 et 5:1 environ dans un
système à plasma radiofréquence maintenu à une pression inférieure à 133 Pa (1 Torr),
ledit substrat étant maintenu à un potentiel électrique compris entre -150 et -900
volts par rapport au plasma généré par le système, l'énergie cinétique desdits ions
étant comprise entre 50 et 300 électron-volts (eV) par ion.
2. Procédé selon la revendication 1, dans lequel le procédé est exécuté à une température
inférieure à 100°C environ.
3. Procédé selon la revendication 1 ou la revendication 2, dans lequel le rapport molaire
de l'ammoniac sur borazine s'échelonne de 1:1 à 4:1.
4. Procédé selon l'une quelconque des revendications précédentes, dans lequel le rapport
atomique N:B dans ledit a-BN:H est d'au moins 0,7:1 environ.
5. Procédé selon la revendication 4, dans lequel le rapport atomique N:B dans ledit a-BN:H
est d'environ 1:1.
6. Procédé selon l'une quelconque des revendications précédentes, dans lequel ledit substrat
comprend des substances choisies dans le groupe constitué de verre, de matières plastiques,
et de métal.
7. Procédé selon l'une quelconque des revendications précédentes, dans lequel ledit film
présente une bande interdite d'au moins 2,5 eV.
8. Procédé selon l'une quelconque des revendications précédentes, dans lequel les ions
générés ont des énergie de choc sur ledit substrat inférieures à 3 Watts/cm2 environ.
9. Procédé selon l'une quelconque des revendications précédentes, dans lequel en cours
de dépôt le système est maintenu à une densité de puissance comprise entre 0,5 W/cm2 et 3 W/cm2.
10. Film en nitrure de bore hydrogéné amorphe (a-BN:H) dur, transparent comprenant N:B
suivant un rapport d'au moins 0,7:1 environ et comprenant au moins 20% environ de
liaisons sp3 entre le bore et l'azote dans le film.
11. Film selon la revendication 10, dans lequel le rapport B:N est essentiellement stoechiométrique.